Introduction

Qwen2.5-32B-DialogueReason is a dialogue-based reasoning model built on Qwen2.5-32B-Base.
We train the model using Open-Reasoner-Zero data through rule-based reinforcement learning.

๐Ÿง  Key Features

  • Qwen2.5-32B-Base as the foundation.
  • Use Rule-Based RL to achieve dialogue reasoning.
  • With dynamic agent initialization to adapt to various scenarios.
  • With flexible environment configuration to set up task-specific contexts.
  • With multi-turn dialogue reasoning to incrementally solve problems.

Example

System:

The User asks a question, and the Assistant writes a masterpiece play depicting experts (picked based on the topic with concrete names) solving the question in a ultra-detailed dialogue. The response is formatted as: the play goes here\n if asked to write code, then code here surrounded by ```. Otherwise, answer here with \boxed{answer} emphasized.

User:

Give me a detailed explanation of PPO in RL

Assistant:

image/png

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